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本文引用的文献

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Indication of BOLD-specific venous flow-volume changes from precisely controlled hyperoxic vs. hypercapnic calibration.从精确控制的高氧与高碳酸校准中得出 BOLD 特异性静脉血流-容积变化的指征。
J Cereb Blood Flow Metab. 2012 Apr;32(4):709-19. doi: 10.1038/jcbfm.2011.174. Epub 2011 Dec 14.
2
A general analysis of calibrated BOLD methodology for measuring CMRO2 responses: comparison of a new approach with existing methods.一种用于测量 CMRO2 反应的校准 BOLD 方法的综合分析:新方法与现有方法的比较。
Neuroimage. 2012 Mar;60(1):279-89. doi: 10.1016/j.neuroimage.2011.11.081. Epub 2011 Dec 6.
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Measuring venous blood volume changes during activation using hyperoxia.使用高氧测量激活过程中的静脉血容量变化。
Neuroimage. 2012 Feb 15;59(4):3266-74. doi: 10.1016/j.neuroimage.2011.11.041. Epub 2011 Nov 22.
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Quantitative functional MRI: concepts, issues and future challenges.定量功能磁共振成像:概念、问题及未来挑战。
Neuroimage. 2012 Aug 15;62(2):1234-40. doi: 10.1016/j.neuroimage.2011.10.046. Epub 2011 Oct 20.
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Scaling of brain metabolism and blood flow in relation to capillary and neural scaling.脑代谢和血流与毛细血管和神经比例的关系。
PLoS One. 2011;6(10):e26709. doi: 10.1371/journal.pone.0026709. Epub 2011 Oct 28.
6
A theoretical framework for estimating cerebral oxygen metabolism changes using the calibrated-BOLD method: modeling the effects of blood volume distribution, hematocrit, oxygen extraction fraction, and tissue signal properties on the BOLD signal.使用校准的 BOLD 方法估计脑氧代谢变化的理论框架:模拟血容量分布、血细胞比容、氧摄取分数和组织信号特性对 BOLD 信号的影响。
Neuroimage. 2011 Sep 1;58(1):198-212. doi: 10.1016/j.neuroimage.2011.05.077. Epub 2011 Jun 6.
7
Fluctuating and sensory-induced vasodynamics in rodent cortex extend arteriole capacity.啮齿动物皮层中波动和感觉诱导的血管动力学可扩展小动脉的容量。
Proc Natl Acad Sci U S A. 2011 May 17;108(20):8473-8. doi: 10.1073/pnas.1100428108. Epub 2011 May 2.
8
Temporal dynamics and spatial specificity of arterial and venous blood volume changes during visual stimulation: implication for BOLD quantification.视觉刺激期间动脉和静脉血容量变化的时变动态和空间特异性:对 BOLD 定量的启示。
J Cereb Blood Flow Metab. 2011 May;31(5):1211-22. doi: 10.1038/jcbfm.2010.226. Epub 2010 Dec 22.
9
Pericytes in capillaries are contractile in vivo, but arterioles mediate functional hyperemia in the mouse brain.毛细血管中的周细胞在体内具有收缩性,但在小鼠大脑中,动脉血管调节功能充血。
Proc Natl Acad Sci U S A. 2010 Dec 21;107(51):22290-5. doi: 10.1073/pnas.1011321108. Epub 2010 Dec 6.
10
Consistent changes in intracranial pressure waveform morphology induced by acute hypercapnic cerebral vasodilatation.急性高碳酸血症性脑血管扩张引起的颅内压波形形态的一致变化。
Neurocrit Care. 2011 Aug;15(1):55-62. doi: 10.1007/s12028-010-9463-x.

脑激活期间的脑血容量变化。

Cerebral blood volume changes during brain activation.

机构信息

Department of Neurophysics, Max-Planck Institute for Human Cognitive and Brain Sciences, Leipzig, Germany.

出版信息

J Cereb Blood Flow Metab. 2012 Aug;32(8):1618-31. doi: 10.1038/jcbfm.2012.63. Epub 2012 May 9.

DOI:10.1038/jcbfm.2012.63
PMID:22569192
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3421101/
Abstract

Cerebral blood volume (CBV) changes significantly with brain activation, whether measured using positron emission tomography, functional magnetic resonance imaging (fMRI), or optical microscopy. If cerebral vessels are considered to be impermeable, the contents of the skull incompressible, and the skull itself inextensible, task- and hypercapnia-related changes of CBV could produce intolerable changes of intracranial pressure. Because it is becoming clear that CBV may be useful as a well-localized marker of neural activity changes, a resolution of this apparent paradox is needed. We have explored the idea that much of the change in CBV is facilitated by exchange of water between capillaries and surrounding tissue. To this end, we developed a novel hemodynamic boundary-value model and found approximate solutions using a numerical algorithm. We also constructed a macroscopic experimental model of a single capillary to provide biophysical insight. Both experiment and theory model capillary membranes as elastic and permeable. For a realistic change of input pressure, a relative pipe volume change of 21±5% was observed when using the experimental setup, compared with the value of approximately 17±1% when this quantity was calculated from the mathematical model. Volume, axial flow, and pressure changes are in the expected range.

摘要

脑血容量(CBV)在大脑激活时会发生显著变化,无论使用正电子发射断层扫描、功能磁共振成像(fMRI)还是光学显微镜进行测量。如果认为脑血管是不可渗透的、颅骨内容物是不可压缩的且颅骨本身是不可伸展的,那么与任务和高碳酸血症相关的 CBV 变化可能会导致颅内压无法承受的变化。由于 CBV 可能作为神经活动变化的良好局部标记物变得越来越重要,因此需要解决这一明显的悖论。我们探讨了这样一种观点,即 CBV 的大部分变化是通过毛细血管和周围组织之间的水交换来实现的。为此,我们开发了一种新的血流动力学边值模型,并使用数值算法找到了近似解。我们还构建了一个单个毛细血管的宏观实验模型,以提供生物物理见解。实验和理论模型都将毛细血管膜视为弹性和可渗透的。对于输入压力的实际变化,当使用实验设置时,观察到相对管体积变化为 21±5%,而当从数学模型计算该数量时,该值约为 17±1%。体积、轴向流动和压力变化都在预期范围内。